WO2021129032A1 - 气调保鲜冰箱的控制方法、冰箱和存储介质 - Google Patents
气调保鲜冰箱的控制方法、冰箱和存储介质 Download PDFInfo
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- WO2021129032A1 WO2021129032A1 PCT/CN2020/119394 CN2020119394W WO2021129032A1 WO 2021129032 A1 WO2021129032 A1 WO 2021129032A1 CN 2020119394 W CN2020119394 W CN 2020119394W WO 2021129032 A1 WO2021129032 A1 WO 2021129032A1
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D29/00—Arrangement or mounting of control or safety devices
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D11/00—Self-contained movable devices, e.g. domestic refrigerators
- F25D11/02—Self-contained movable devices, e.g. domestic refrigerators with cooling compartments at different temperatures
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D2500/00—Problems to be solved
- F25D2500/06—Stock management
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D2600/00—Control issues
- F25D2600/02—Timing
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25D—REFRIGERATORS; COLD ROOMS; ICE-BOXES; COOLING OR FREEZING APPARATUS NOT OTHERWISE PROVIDED FOR
- F25D2600/00—Control issues
- F25D2600/06—Controlling according to a predetermined profile
Definitions
- the invention relates to the field of intelligent control of refrigerators, in particular to a control method of a modified atmosphere fresh-keeping refrigerator, a refrigerator and a storage medium.
- a modified atmosphere film is usually installed on the fresh-keeping room, and a vacuum pump is used to pump air in the fresh-keeping room to adjust the gas atmosphere in the fresh-keeping room, reduce the oxygen content, and improve the fresh-keeping effect.
- the multiple fresh-keeping compartments need to be evacuated at the same time.
- the oxygen content in different fresh-keeping rooms may be different, and some fresh-keeping rooms have higher oxygen content, which affects the fresh-keeping effect.
- the present invention provides a control method of a modified atmosphere preservation refrigerator, a refrigerator and a storage medium.
- the present invention provides a control method of a modified atmosphere preservation refrigerator, which includes:
- the air flow pipeline connecting the vacuum pump and the fresh-keeping chambers with the air-conditioning requirement is started, and the vacuum pump is started;
- the airflow pipeline connected to each of the fresh-keeping compartments with the air conditioning requirement is controlled, and the rotation speed is negatively related to the connection duration of the airflow pipeline.
- all the fresh-keeping rooms are the fresh-keeping rooms that require air conditioning
- the fresh-keeping room that sends out the open signal is the fresh-keeping room that requires air conditioning.
- obtaining the rotational speed of the vacuum pump when the airflow pipe of each fresh-keeping room with air conditioning requirement is opened separately includes:
- obtaining the rotational speed of the vacuum pump when the airflow pipeline of each fresh-keeping room with air conditioning requirement is opened separately also includes:
- controlling the airflow pipelines connected to each of the fresh-keeping compartments requiring air conditioning according to the size of the rotation speed, and the rotation speed is negatively related to the connection duration of the airflow pipeline, including:
- the second connection duration corresponds to the ranking of the rotation speed
- the second connection duration is negatively related to the rotation speed
- the connection duration is the sum of the first connection duration and the second connection duration .
- controlling the airflow pipelines connected to each of the fresh-keeping compartments requiring air conditioning according to the size of the rotation speed, and the rotation speed is negatively related to the connection duration of the airflow pipeline, including:
- connection duration corresponds to the rotation speed, and the connection duration is negatively correlated with the rotation speed.
- the rotation speed of the vacuum pump is detected by a Hall sensor.
- sensing whether it is daytime includes:
- an embodiment of the present application provides a refrigerator, which includes: a box body in which a storage space is formed; a plurality of fresh-keeping rooms are placed in the box body; The air-regulated membrane components on the plurality of fresh-keeping chambers, a vacuum pump installed in the box, and an airflow pipeline connecting the plurality of fresh-keeping chambers and the vacuum pump; further comprising a memory and a processor, and the memory stores A computer program that can be run on the processor, and when the processor executes the program, any one of the steps in the control method of the above-mentioned modified atmosphere refrigerator is realized.
- an embodiment of the present application provides a computer-readable storage medium on which a computer program is stored.
- the computer program is executed by a processor, the above-mentioned control method for a modified atmosphere refrigerator is implemented. A step of.
- the beneficial effects of the present invention by measuring the rotation speed of the vacuum pump when each fresh-keeping chamber is individually pumped, and controlling the pumping time of each fresh-keeping chamber according to the rotation speed, it prevents the oxygen concentration in some fresh-keeping chambers from being too low due to the manufacturing error of the air-regulated film Affect the preservation effect.
- FIG. 1 is a schematic flowchart of a control method of a modified atmosphere preservation refrigerator according to an embodiment of the present invention
- FIG. 2 is a schematic flowchart of a control method of a modified atmosphere preservation refrigerator according to a specific embodiment of the present invention
- Fig. 3 is a schematic diagram of a refrigerator according to an embodiment of the present invention.
- Fig. 4 is a schematic diagram of a fresh-keeping room in a real-time mode of the present invention.
- the present invention provides a control method of a modified atmosphere preservation refrigerator, including:
- the airflow pipeline connecting the vacuum pump and the fresh-keeping chambers with the air-conditioning requirement is started, and the vacuum pump is started;
- the airflow pipeline connected to each of the fresh-keeping compartments with the air conditioning requirement is controlled, and the rotation speed is negatively related to the connection duration of the airflow pipeline.
- the fresh-keeping room is equipped with a modified atmosphere film, and the fresh-keeping room with the requirement of atmosphere regulation is the fresh-keeping room whose oxygen concentration is less than the concentration threshold.
- the rotation speed of the vacuum pump when the airflow pipe of each fresh-keeping room with air-conditioning requirement is opened separately is the rotation speed of the vacuum pump when the vacuum pump individually pumps air for each fresh-keeping room with air-conditioning requirement ,
- the rotation speed is negatively correlated with the connection duration of the airflow pipeline, that is, the higher the rotation speed, the shorter the connection duration of the airflow pipeline.
- the opening and closing of each air flow pipeline is controlled according to the size of the rotation speed, so as to prevent the low oxygen content of some fresh-keeping rooms due to the poor air permeability of the air-regulated film, which affects the fresh-keeping effect.
- all the fresh-keeping rooms are the fresh-keeping rooms that require air conditioning
- the fresh-keeping room that sends out the open signal is the fresh-keeping room that requires air conditioning.
- obtaining the rotational speed of the vacuum pump when the airflow pipe of each fresh-keeping room with air conditioning requirement is individually opened includes:
- the preset time length is a preset time length, specifically, it may be 1 min.
- obtaining the rotational speed of the vacuum pump when the airflow pipe of each fresh-keeping room with air conditioning requirement is individually opened also includes:
- the first connection time length is a time length preset according to the number of fresh-keeping compartments that require air conditioning.
- each of the air flow pipes is individually opened to the preset time period in turn, that is, when the air flow pipes of the fresh-keeping chambers with air conditioning requirements are opened at the same time to the first connection time period, Open the airflow pipeline of each fresh-keeping room with air conditioning requirement individually in turn and measure the rotation speed corresponding to the vacuum pump. In this way, under the same conditions, measuring the rotation speed of the corresponding vacuum pump of each of the fresh-keeping chambers requiring air conditioning can ensure the accuracy of the data.
- controlling the airflow pipelines connected to each of the fresh-keeping compartments with air conditioning requirements according to the size of the rotation speed, where the rotation speed is negatively related to the connection duration of the airflow pipeline includes:
- the second connection duration corresponds to the rotation speed ranking
- the second connection duration is negatively correlated with the rotation speed
- the connection duration is the sum of the first connection duration and the second connection duration.
- the second connection duration is a value preset according to the rotation speed ranking. For example, the rotation speed is ranked in descending order, and the second connection duration corresponding to the air flow pipe with the higher rotation speed is smaller, that is, the airflow with the higher rotation speed ranking.
- the second connection duration corresponding to the pipeline is smaller.
- two fresh-keeping compartments are provided in the refrigerator, and when both fresh-keeping compartments have air conditioning requirements, the vacuum pump is connected to the airflow pipelines of the two fresh-keeping compartments at the same time, and the vacuum pump is started;
- each airflow pipeline is opened individually in turn to the preset duration, and the rotation speed corresponding to the vacuum pump when each airflow pipeline is separately opened is measured; at this time, each airflow pipeline is controlled according to the size of the rotation speed.
- the second connection duration of each airflow pipeline is reopened to the second connection duration, and the second connection duration of each airflow pipeline is a value preset according to the rotation speed ranking. For example, the second connection duration corresponding to the airflow pipeline with a high rotation speed is 0, and the rotation speed
- the second connection duration corresponding to the small air flow pipeline is 15 minutes.
- the airflow pipeline of each of the fresh-keeping compartments with a modified atmosphere demand is opened individually in turn to the preset duration to obtain each The speed of the vacuum pump when the airflow pipes of the fresh-keeping compartments with air-conditioning requirements are opened individually, and then all the airflow pipes of the fresh-keeping compartments with air-conditioning requirements are opened at the same time, and each airflow pipe is opened to the corresponding The connection duration is closed.
- the connection duration is a preset value, which corresponds to the rotation speed ranking, and the connection duration is negatively related to the rotation speed.
- connection time is increased for the air flow pipe with a low rotation speed to ensure that the oxygen concentration in each fresh-keeping chamber reaches the concentration threshold.
- the rotation speed of the vacuum pump is detected by a Hall sensor.
- sensing whether it is daytime includes:
- the vacuum pump is allowed to start only when it is judged as daytime, so as to prevent noise caused by the vacuum pump operation at night and affect the user's sleep.
- the vacuum pump and the compressor can be prevented from working at the same time, and excessive noise generated by the refrigerator can be prevented from affecting the user experience.
- an embodiment of the present invention also provides a refrigerator 100, which includes a box body and a door movably connected to the box body, and a storage space is formed in the box body.
- a plurality of fresh-keeping chambers 110 and air conditioning devices are provided in the box.
- the air-conditioning device includes an air-conditioning membrane assembly 111 arranged on each fresh-keeping compartment, a vacuum pump installed in the box, and an airflow pipeline connecting each fresh-keeping compartment and the vacuum pump.
- the refrigerator 100 further includes a memory 102 and a processor 101, and the memory 102 and the processor 101 are communicatively connected through a communication bus 104.
- the memory 102 stores a computer program that can run on the processor 101.
- the refrigerator also includes a communication interface 103 connected to the communication bus 104 for communicating with other devices in the refrigerator 100.
- An embodiment of the present invention also provides a computer-readable storage medium on which a computer program is stored, and when the computer program is executed by a processor, the steps in the control method of the modified atmosphere refrigerator in the above-mentioned embodiment are realized. That is to say, the steps of any one of the technical solutions in the control method of the above-mentioned modified atmosphere preservation refrigerator are realized.
- control method of the air-conditioned fresh-keeping refrigerator controls the connection time of the airflow pipeline corresponding to each fresh-keeping room according to the speed of the vacuum pump when the different fresh-keeping rooms are individually pumped, so as to avoid the risk of the fresh-keeping room.
- the manufacturing error of the modified atmosphere film causes the oxygen concentration in the fresh-keeping room to be too high, which is beneficial to improve the fresh-keeping effect.
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Abstract
一种气调保鲜冰箱的控制方法、冰箱和存储介质,所述控制方法包括:检测有气调需求的保鲜室(110)的数量;若所述有气调需求的保鲜室(110)的数量为一个,连通真空泵和所述有气调需求的保鲜室(110)的气流管路,启动所述真空泵;若所述有气调需求的保鲜室(110)的数量大于等于两个,获取每个所述有气调需求的保鲜室(110)的气流管路单独打开时所述真空泵的转速;根据所述转速大小控制连通每个所述有气调需求的保鲜室(110)的气流管路,所述转速与所述气流管路的连通时长负相关。
Description
本发明涉及冰箱的智能控制领域,特别是一种气调保鲜冰箱的控制方法、冰箱以及存储介质。
在家庭生活中,冰箱已经成为一种不可或缺的家用电器。随着生活品质的提高,用户对于存储食品的保鲜要求也越来越高。为了提高食材的保鲜效果,通常在保鲜室上安装气调膜,同时使用真空泵对保鲜室抽气调节保鲜室中气体氛围,降低氧气含量,提升保鲜效果。
当冰箱内设置多个保鲜室时,在冰箱上电初期或者用户同时打开多个保鲜室时,需要对多个保鲜室同时抽气。但由于不同保鲜室上安装的气调膜存在制造误差,因此,在对多个保鲜室同时抽气时,可能导致不同保鲜室内的氧气含量不同,部分保鲜室氧气含量较高,影响保鲜效果。
发明内容
为了解决上述问题,本发明提供一种气调保鲜冰箱的控制方法、冰箱以及存储介质。
为实现上述发明目的之一,本发明提供了一种气调保鲜冰箱的控制方法,包括:
检测有气调需求的保鲜室的数量;
若所述有气调需求的保鲜室的数量为一个,连通真空泵和所述有气调需求的保鲜室的气流管路,启动所述真空泵;
若所述有气调需求的保鲜室的数量大于等于两个,获取每个所述有气调需求的保鲜室的气流管路单独打开时所述真空泵的转速;
根据所述转速大小控制连通每个所述有气调需求的保鲜室的气流管路,所述转速与所述气流管路的连通时长负相关。
作为本发明的进一步改进,检测到所述冰箱的上电信号时,所有保鲜室均为所述有气调需求的保鲜室;
或检测到保鲜室的打开信号时,发出所述打开信号的保鲜室为所述有气调需求的保鲜室。
作为本发明的进一步改进,“获取每个所述有气调需求的保鲜室的气流管路单独打开时所述真空泵的转速”,包括:
依次单独打开每个所述气流管路至预设时长;
检测单独打开每个所述气流管路时所述真空泵的转速。
作为本发明的进一步改进,“获取每个所述有气调需求的保鲜室的气流管路单独打开时所述真空泵的转速”,还包括:
打开所有所述有气调需求的保鲜室的气流管路并运转所述真空泵至第一连通时长时,然后再依次单独打开每个所述气流管路至预设时长;其中,所述第一连通时长与所述有气调需求的保鲜室的数量对应。
作为本发明的进一步改进,“根据所述转速大小控制连通每个所述有气调需求的保鲜室的气流管路,所述转速与所述气流管路的连通时长负相关”,包括:
依次单独打开每个所述有气调需求的保鲜室的气流管路至对应的第 二连通时长;
其中,所述第二连通时长与所述转速的排名相对应,所述第二连通时长与所述转速负相关,所述连通时长为所述第一连通时长与所述第二连通时长之和。
作为本发明的进一步改进,“根据所述转速大小控制连通每个所述有气调需求的保鲜室的气流管路,所述转速与所述气流管路的连通时长负相关”,包括:
在依次单独打开每个所述气流管路至预设时长后,同时打开所有所述有气调需求的保鲜室的气流管路至对应的连通时长,每个气流管路打开至对应的连通时长时关闭,所述连通时长与所述转速相对应,且所述连通时长与所述转速负相关。
作为本发明的进一步改进,通过霍尔传感器检测所述真空泵的转速。
作为本发明的进一步改进,在“启动所述真空泵”之前,还包括:
感测是否是白天;
若是,允许所述真空泵启动;
若否,禁止所述真空泵启动。
作为本发明的进一步改进,“感测是否是白天”包括:
通过光传感器检测光照强度;
判断所述光照强度是否在时长阈值内持续大于强度阈值;
若是,判定为白天。
作为本发明的进一步改进,在“启动所述真空泵”之前,还包括:
感测压缩机是否运行;
若是,禁止所述真空泵启动,
若否,允许所述真空泵启动。
为实现上述发明目的之一,本申请一实施方式提供了一种冰箱,包括:箱体,其内形成储物空间;多个保鲜室,置于所述箱体内;气调装置,包括安装于所述多个保鲜室上的气调膜组件、安装于所述箱体内的真空泵以及连接所述多个保鲜室和所述真空泵的气流管路;还包括存储器和处理器,所述存储器存储有可在所述处理器上运行的计算机程序,所述处理器执行所述程序时实现上述的气调保鲜冰箱的控制方法中的任意一个步骤。
为实现上述发明目的之一,本申请一实施方式提供了一种计算机可读存储介质,其上存储有计算机程序,所述计算机程序被处理器执行时实现上述的气调保鲜冰箱的控制方法中的步骤。
本发明的有益效果:通过测量真空泵单独为每个保鲜室抽气时的转速并根据转速控制对每个保鲜室的抽气时间,防止因气调膜的制造误差导致部分保鲜室内氧气浓度过低影响保鲜效果。
图1为本发明一实施方式的气调保鲜冰箱的控制方法的流程示意图;
图2为本发明一具体实施方式的气调保鲜冰箱的控制方法的流程示意图;
图3为本发明一实施方式的冰箱示意图;
图4为本发明一实时方式保鲜室的示意图。
为了使本技术领域的人员更好地理解本发明中的技术方案,下面将结合本发明实施例中的附图,对本发明实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本发明一部分实施例,而不是全部的实施例。基于本发明中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其他实施例,都应当属于本发明保护的范围。
如图1所示,本发明提供了一种气调保鲜冰箱的控制方法,包括:
检测有气调需求的保鲜室的数量;
若所述有气调需求的保鲜室的数量为一个,连通真空泵和有气调需求的保鲜室的气流管路,启动所述真空泵;
若所述有气调需求的保鲜室的数量大于等于两个,获取每个所述有气调需求的保鲜室的气流管路单独打开时所述真空泵的转速;
根据所述转速大小控制连通每个所述有气调需求的保鲜室的气流管路,所述转速与所述气流管路的连通时长负相关。
其中,保鲜室上均安装有气调膜,有气调需求的保鲜室为氧气浓度小于浓度阈值的保鲜室。
每个所述有气调需求的保鲜室的气流管路单独打开时所述真空泵的转速,即为所述真空泵单独为每个所述有气调需求的保鲜室抽气时所述真空泵的转速,转速越大,对应的保鲜室的气调膜的透气性越好,相同时长内,保鲜室内的氧气含量越低。
所述转速与所述气流管路的连通时长负相关,即对应转速越大的保鲜室,其气流管路的连通时长越短。如此,根据所述转速大小控制所述 每个气流管路的开闭,防止部分保鲜室因气调膜的透气性差导致氧气含量过低,影响保鲜效果。
进一步的,检测到所述冰箱的上电信号时,所有保鲜室均为所述有气调需求的保鲜室;
检测到保鲜室的打开信号时,发出打开信号的保鲜室为所述有气调需求的保鲜室。
如此,通过检测上电信号和保鲜室的打开信号,自动判断每个保鲜室的气调需求,获取有气调需求的保鲜室的数量,方便快捷。
进一步的,“获取每个所述有气调需求的保鲜室的气流管路单独打开时所述真空泵的转速”,包括:
依次单独打开每个所述气流管路至预设时长;
检测单独打开每个所述气流管路时所述真空泵的转速。
其中,预设时长为预先设定的时长,具体的,可以为1min。
进一步的,参见图2,“获取每个所述有气调需求的保鲜室的气流管路单独打开时所述真空泵的转速”,还包括:
打开所有所述有气调需求的保鲜室的气流管路并运转所述真空泵至第一连通时长时,然后再依次单独打开每个所述气流管路至预设时长;其中,所述第一连通时长与所述有气调需求的保鲜室的数量对应。
其中,第一连通时长为根据有气调需求的保鲜室的数量预先设定的时长。运转所述真空泵至第一连通时长时,依次单独打开每个所述气流管路至预设时长,即在同时打开所述有气调需求的保鲜室的气流管路至第一连通时长时,依次单独打开每个所述有气调需求的保鲜室的气流管路并测量所述真空泵对应的转速。如此,在同等条件下测量每个所述有 气调需求的保鲜室的对应的真空泵的转速,能够保证数据的准确性。
进一步的,“根据所述转速大小控制连通每个所述有气调需求的保鲜室的气流管路,所述转速与所述气流管路的连通时长负相关”,包括:
依次单独打开每个所述有气调需求的保鲜室的气流管路至对应的第二连通时长;
其中,所述第二连通时长与所述转速排名相对应,所述第二连通时长与所述转速负相关,所述连通时长为所述第一连通时长与所述第二连通时长之和。
其中,第二连通时长为根据转速排名预先设定的值,例如,对转速进行降序排名,对应转速越大的气流管路对应的第二连通时长越小,即对应转速排名越靠前的气流管路对应的第二连通时长越小。在一个具体的示例中,冰箱内设置有两个保鲜室,当两个保鲜室均有气调需求时,同时连通所述真空泵和所述两个保鲜室的气流管路,启动所述真空泵;当所述真空泵运转至第一连通时长,依次单独打开每个气流管路至预设时长,并测量每个气流管路单独打开时所述真空泵对应的转速;此时,根据转速的大小控制每个气流管路再打开至第二连通时长,每个气流管路的第二连通时长为根据转速排名预先设定的值,例如,转速大的气流管路对应的第二连通时长为0,转速小的气流管路对应的第二连通时长为15min。
当然,可以实施的,当所述有气调需求的保鲜室的数量大于等于两个时,先依次单独打开每个所述有气调需求的保鲜室的气流管路至预设时长,获取每个所述有气调需求的保鲜室的气流管路单独打开时所述真空泵的转速,再同时打开所有所述有气调需求的保鲜室的气流管路,每 个气流管路打开至对应的连通时长时关闭,此时,连通时长为预先设定值,与转速排名相对应,且所述连通时长与所述转速负相关。
如此,对对应转速小的气流管路增加连通时长,保证每个保鲜室内的氧气浓度达到浓度阈值。
进一步的,通过霍尔传感器检测所述真空泵的转速。
在“启动所述真空泵”之前,还包括:
感测是否是白天;
若是,允许所述真空泵启动;
若否,禁止所述真空泵启动。
其中,“感测是否是白天”包括:
通过光传感器检测光照强度;
判断所述光照强度是否在预设时长内持续大于强度阈值;
若是,判定为白天。
如此,通过检测光照强度,能够自动判断是否为白天,且仅在判定为白天时允许所述真空泵启动,防止夜晚真空泵工作带来噪音,影响用户睡眠。
进一步的,“启动所述真空泵”之前,还包括:
感测压缩机是否运行;
若是,禁止所述真空泵启动,
若否,允许所述真空泵启动。
如此,能够避免真空泵和压缩机同时工作,避免冰箱产生的噪音过大影响用户体验。
参见图3、图4,本发明一实施方式还提供一种冰箱100,包括箱体 和活动连接于箱体的门体,箱体内形成储物空间。箱体内设置有多个保鲜室110以及气调装置。气调装置包括设置在每个保鲜室上的气调膜组件111、安装于箱体内的真空泵以及连接每个保鲜室和真空泵的气流管路。冰箱100还包括存储器102和处理器101,存储器102和处理器101通过通信总线104通信连接。存储器102上存储有可在处理器101上运行的计算机程序,所述处理器101执行所述计算机程序时,实现上述实施方式中的气调保鲜冰箱的控制方法中的步骤,也就是说实现上述的气调保鲜冰箱的控制方法中任一个技术方案的步骤。冰箱还包括与通信总线104连接的通信接口103,用于与冰箱100内的其他设备通信。
本发明一实施方式还提供一种计算机可读存储介质,其上存储有计算机程序,所述计算机程序被处理器执行时,实现上述实施方式中的气调保鲜冰箱的控制方法中的步骤,也就是说实现上述的气调保鲜冰箱的控制方法中任一个技术方案的步骤。
因此,综上所述,本发明中提供的气调保鲜冰箱的控制方法,根据真空泵对不同保鲜室单独抽气时的转速控制每个保鲜室对应的气流管路的连通时长,避免因保鲜室的气调膜制造误差导致保鲜室内的氧气浓度过高,有利于提高保鲜效果。
应当理解,虽然本说明书按照实施例加以描述,但并非每个实施例仅包含一个独立的技术方案,说明书的这种叙述方式仅仅是为清楚起见,本领域技术人员应当将说明书作为一个整体,各实施例中的技术方案也可以经适当组合,形成本领域技术人员可以理解的其他实施例。
上文所列出的一系列的详细说明仅仅是针对本发明的可行性实施例的具体说明,并非用以限制本发明的保护范围,凡未脱离本发明技艺精 神所作的等效实施例或变更均应包含在本发明的保护范围之内。
Claims (12)
- 一种气调保鲜冰箱的控制方法,其特征在于,包括:检测有气调需求的保鲜室的数量;若所述有气调需求的保鲜室的数量为一个,连通真空泵和所述有气调需求的保鲜室的气流管路,启动所述真空泵;若所述有气调需求的保鲜室的数量大于等于两个,获取每个所述有气调需求的保鲜室的气流管路单独打开时所述真空泵的转速;根据所述转速大小控制连通每个所述有气调需求的保鲜室的气流管路,所述转速与所述气流管路的连通时长负相关。
- 如权利要求1所述的气调保鲜冰箱的控制方法,其特征在于,检测到所述冰箱的上电信号时,所有保鲜室均为所述有气调需求的保鲜室;或检测到保鲜室的打开信号时,发出所述打开信号的保鲜室为所述有气调需求的保鲜室。
- 如权利要求1所述的气调保鲜冰箱的控制方法,其特征在于,“获取每个所述有气调需求的保鲜室的气流管路单独打开时所述真空泵的转速”,包括:依次单独打开每个所述气流管路至预设时长;检测单独打开每个所述气流管路时所述真空泵的转速。
- 如权利要求3所述的气调保鲜冰箱的控制方法,其特征在于,“获取每个所述有气调需求的保鲜室的气流管路单独打开时所述真空泵的转速”,还包括:打开所有所述有气调需求的保鲜室的气流管路并运转所述真空泵至第一连通时长时,然后再依次单独打开每个所述气流管路至预设时长;其中,所述第一连通时长与所述有气调需求的保鲜室的数量对应。
- 如权利要求4所述的气调保鲜冰箱的控制方法,其特征在于,“根据所述转速大小控制连通每个所述有气调需求的保鲜室的气流管路,所述转速与所述气流管路的连通时长负相关”,包括:依次单独打开每个所述有气调需求的保鲜室的所述气流管路至对应的第二连通时长;其中,所述第二连通时长与所述转速的排名相对应,且所述第二连通时长与所述转速负相关,所述连通时长为所述第一连通时长与所述第二连通时长之和。
- 如权利要求3所述的气调保鲜冰箱的控制方法,其特征在于,“根据所述转速大小控制连通每个所述有气调需求的保鲜室的气流管路,所述转速与所述气流管路的连通时长负相关”包括:在依次单独打开每个所述气流管路至预设时长后,同时打开所有所述有气调需求的保鲜室的气流管路,每个气流管路打开至对应的连通时长时关闭,所述连通时长与所述转速的排名相对应,且所述连通时长与所述转速负相关。
- 如权利要求1所述的气调保鲜冰箱的控制方法,其特征在于,通过霍尔传感器检测所述真空泵的转速。
- 如权利要求1所述的气调保鲜冰箱的控制方法,其特征在于,在“启动所述真空泵”之前,还包括:感测是否是白天;若是,允许所述真空泵启动;若否,禁止所述真空泵启动。
- 如权利要求8所述的气调保鲜冰箱的控制方法,其特征在于,“感测是否是白天”包括:通过光传感器检测光照强度;判断所述光照强度是否在时长阈值内持续大于强度阈值;若是,判定为白天。
- 如权利要求1所述的气调保鲜冰箱的控制方法,其特征在于,在“启动所述真空泵”之前,还包括:感测压缩机是否运行;若是,禁止所述真空泵启动,若否,允许所述真空泵启动。
- 一种冰箱,包括:箱体,其内形成储物空间;多个保鲜室,置于所述箱体内;气调装置,包括安装于所述多个保鲜室上的气调膜组件、安装于所述箱体内的真空泵以及连接所述多个保鲜室和所述真空泵的气流管路;其特征在于,还包括存储器和处理器,所述存储器存储有可在所述处理器上运行的计算机程序,所述处理器执行所述程序时实现如权利要求1所述的气调保鲜冰箱的控制方法中的任意一个步骤。
- 一种计算机可读存储介质,其特征在于,所述计算机可读存储介质存储有计算机程序,所述计算机程序被处理器执行实现如权利要求1所述的气调保鲜冰箱的控制方法中的任意一个步骤。
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